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EyeCi: Optical clearing and imaging of immunolabeled mouse eyes using light-sheet fluorescence microscopy
Yoshiyuki Henning1, Christin Osadnik2, Erich Pascal Malkemper3
1Institute of Physiology, University of Duisburg-Essen, 45147, Essen, Germany; Dept. of General Zoology, Faculty of Biology, University of Duisburg-Essen, 45141, Essen, Germany.
Insights
A new protocol, EyeCi, enables 3D imaging of whole, immunolabeled mouse eyes by combining melanin bleaching and solvent clearing. This rapid, inexpensive method allows high-resolution analysis of ocular vasculature in intact eyeballs.
Area of Science:
- Ophthalmology
- Biomedical Imaging
- Systems Biology
Background:
- Immunofluorescent imaging is crucial for studying tissue morphology and molecular features.
- Traditional methods require tissue sectioning, limiting analysis to 2D and hindering 3D structural understanding.
- Existing tissue-clearing techniques allow 3D imaging of organs but exclude the eye due to pigmentation.
Purpose of the Study:
- To develop a novel protocol for whole-eye clearing and immunolabeling.
- To enable 3D imaging of ocular structures, overcoming limitations of previous methods.
- To facilitate high-throughput, high-resolution analysis of eye vasculature.
Main Methods:
- Developed EyeCi, a protocol combining melanin bleaching with solvent-based clearing.
- Validated compatibility with immunolabeling for ocular and retinal vasculature.
- Utilized light-sheet fluorescence microscopy for imaging intact, cleared mouse eyes.
Main Results:
- Successfully cleared and immunolabeled intact mouse eyes using the EyeCi protocol.
- Visualized ocular and retinal vasculature in 3D within intact eyeballs.
- Demonstrated a rapid (1 week) and inexpensive method for high-resolution vascular analysis.
Conclusions:
- EyeCi enables unprecedented 3D imaging of whole, immunolabeled eyes, overcoming previous limitations.
- The protocol facilitates high-throughput analysis of ocular vascular architecture in healthy and diseased states.
- EyeCi extends state-of-the-art microscopy for investigating vascular leakage and neovascularization in the eye.
Abstract:
Immunofluorescent imaging is an indispensable technique to study morphology and molecular aspects in tissues. Classical approaches make it necessary to cut physical sections of tissue samples to overcome the limited penetration depth of light, restricting the available information to two dimensions. Recent advances in tissue-clearing techniques enable imaging of fluorescently labeled organs and entire organisms on a cellular level in three dimensions without the need of sectioning. Volume imaging of immunolabeled and cleared tissues started a new era of systems biology, because these techniques provide information on connectivity and circuits, especially in structures with projections in three dimensions such as vascular or nervous systems. The variety of published clearing protocols allows the imaging of every organ with a single exception: the eye. Whole-eye clearing approaches were unsuccessful so far due to the strong pigmentation of the retinal pigment epithelium. Here, we present a new protocol that combines a highly effective melanin bleaching step with solvent-based clearing, termed EyeCi. The protocol is compatible with immunolabeling as demonstrated by the visualization of ocular and retinal vasculature in the intact mouse eye by means of light-sheet fluorescence microscopy. This novel protocol is rapid (1 week) and inexpensive, hence allowing high-throughput, high resolution analysis of vascular architecture of healthy and diseased eyes, in its native, three-dimensional organization within intact eyeballs. Volume imaging of whole cleared eyeballs further enables three-dimensional surface reconstruction and automated quantification of choroidal and retinal vasculature extending ocular imaging to a global level. Thus, EyeCi represents an extension to state-of-the-art light microscopy techniques and is potentially suitable for the investigation of vascular leakage or neovascularization processes.
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